Analysis of clot formation with acoustic radiation force

被引:4
|
作者
Viola, F [1 ]
Longo, DM [1 ]
Lawrence, MB [1 ]
Walker, WF [1 ]
机构
[1] Univ Virginia, Dept Biomed Engn, Charlottesville, VA USA
来源
MEDICAL IMAGE 2002: ULTRASONIC IMAGING AND SIGNAL PROCESSING | 2002年 / 4687卷
关键词
Deep Vein Thrombosis; blood coagulation; acoustic radiation force; mechanical characterization;
D O I
10.1117/12.462160
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Inappropriate blood coagulation plays an important role in diseases including stroke, heart attack, and deep vein thrombosis (DVT). DVT arises when a blood clot forms in a large vein of the leg. DVT is detrimental because the blood flow may be partially or completely obstructed. More importantly, a potentially fatal situation may arise if part of the clot travels to the arteries in the lungs, forming a pulmonary embolism (PE). Characterization of the mechanical properties of DVT could improve diagnosis and suggest appropriate treatment. We are developing a technique to assess mechanical properties of forming thrombi. The technique uses acoustic radiation force as a means to produce small, localized displacements within the sample. Returned ultrasound echoes are processed to estimate the time dependent displacement of the sample. Appropriate mechanical modeling and signal processing produce plots depicting relative mechanical properties (relative elasticity and relative viscosity) and force-free parameters (time constant, damping ratio, and natural frequency). We present time displacement curves of blood samples obtained during coagulation, and show associated relative and force-free parameter plots. These results show that the Voigt model with added mass accurately characterizes blood behavior during clot formation.
引用
收藏
页码:235 / 242
页数:8
相关论文
共 50 条
  • [1] Acoustic Radiation Force Induced Elastography (ARFIRE): a New Method to Characterize Blood Clot Viscoelastic Properties
    Montagnon, Emmanuel
    Tripette, Julien
    Mfoumou, Etienne
    Cloutier, Guy
    2012 IEEE INTERNATIONAL ULTRASONICS SYMPOSIUM (IUS), 2012, : 13 - 16
  • [2] Numerical analysis of the acoustic radiation force and acoustic streaming around a sphere in an acoustic standing wave
    Sepehrirahnama, Shahrokh
    Lim, Kian-Meng
    Chau, Fook Siong
    Proceedings of the 2015 ICU International Congress on Ultrasonics, 2015, 70 : 80 - 84
  • [3] Analysis of contrast in images generated with transient acoustic radiation force
    Nightingale, K
    Palmeri, M
    Trahey, G
    ULTRASOUND IN MEDICINE AND BIOLOGY, 2006, 32 (01): : 61 - 72
  • [4] Acoustic Radiation Force on a Sphere in an Acoustic Levitation Device
    Andrade, Marco A. B.
    Adamowski, Julio C.
    2016 IEEE INTERNATIONAL ULTRASONICS SYMPOSIUM (IUS), 2016,
  • [5] Acoustic Radiation Force on a Sphere in Tissue
    Ilinskii, Yurii A.
    Zabolotskaya, Evgenia A.
    Hamilton, Mark F.
    NONLINEAR ACOUSTICS: STATE-OF-THE-ART AND PERSPECTIVES (ISNA 19), 2012, 1474 : 256 - 259
  • [6] Surface acoustic wave propulsion system with acoustic radiation force
    Kong, Deqing
    Nishio, Kazuki
    Kurosawa, Minoru Kuribayashi
    SENSORS AND ACTUATORS A-PHYSICAL, 2020, 309
  • [7] Enhanced tagging of light utilizing acoustic radiation force with speckle pattern analysis
    Vakili, Ali
    Hollmann, Joseph L.
    Holt, R. Glynn
    DiMarzio, Charles A.
    JOURNAL OF BIOMEDICAL OPTICS, 2017, 22 (10)
  • [8] Tissue elasticity using acoustic radiation force
    Negron, LA
    Walker, WF
    Fernandez, FJ
    MEDICAL IMAGING 2000: ULTRASONIC IMAGING AND SIGNAL PROCESSING, 2000, 3982 : 306 - 314
  • [9] Diversity of biomedical applications of acoustic radiation force
    Sarvazyan, Armen
    ULTRASONICS, 2010, 50 (02) : 230 - 234
  • [10] Behavior analysis of bubble-surrounded cells based on acoustic radiation force in flow
    Arab S.
    Akutsu R.
    Otsuka T.
    Saito T.
    Chikaarashi T.
    Masuda K.
    Transactions of Japanese Society for Medical and Biological Engineering, 2021, Annual59 (Proc): : 786 - 787